首页> 外文学位 >Preparation of polyetherimide nanoparticles by electrospray drying, and their use in the preparation of mixed-matrix carbon molecular-sieve (CMS) membranes.
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Preparation of polyetherimide nanoparticles by electrospray drying, and their use in the preparation of mixed-matrix carbon molecular-sieve (CMS) membranes.

机译:通过电喷雾干燥制备聚醚酰亚胺纳米颗粒,并将其用于制备混合基质碳分子筛(CMS)膜。

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摘要

The goal of the first part of the Thesis is to prepare carbon molecular-sieve (CMS) particles to be utilized in the preparation of mixed-matrix (MM) membranes. Thus an experimental investigation was carried out using electrospray of polyetherimide (UltemRTM-1000 PEI) solutions in dichloroethane to produce fairly monodisperse, fine PEI particles. The effect of three key experimental parameters was investigated, namely, the applied voltage, the liquid flow rate, and the polymer concentration. The liquid flow rate was found to have the most important effect in determining the particle size. An optimal range of flow rates often exists. Particles obtained within the optimal range of the flow rate have a narrower size distribution, and a dense and spherical morphology, compared with those produced with other liquid flow rates. The CMS particles, prepared ex-situ by the pyrolysis of the electrospray PEI particles, are compared in their properties with the CMS particles that were generated by conventional grinding of pyrolyzed PEI pellets. They were found to, generally, have similar structural properties.; In the second part of the Thesis, the technical feasibility of utilizing the MM-CMS membranes in the separation of H2 and CO2 from gas mixtures of relevance to power generation was studied. The MM membranes were fabricated by incorporating the CMS nanoparticles into a polymer matrix. The CMS nanoparticles were prepared by wet-grinding of pyrolyzed pellets of PEI. Flat-sheet MM polymer-base (MMP) membranes, and supported MM-CMS membranes were both prepared. For the MMP membranes, both the CO2 and CH 4 permeabilities increased with increasing the CMS content, while the CO2/CH4 selectivity remained either unchanged or was slightly reduced. This may be due to the poor adhesion between the polymer and the CMS nanoparticles. In the case of the MM-CMS membranes, the incorporation of the CMS nanoparticles greatly enhanced the permeability and selectivity. An ideal CO2/CH4 separation factor of 120 was obtained with a CO2 permeance around 9.0 x 10-8 mol/m 2.s.Pa for membranes with a CMS particle loadings of 10 wt.%. The corresponding H2 separation factor was 130 and with a H2 permeance of 9.7 x 10-8 mol/m2.s.Pa. Also investigated was the influence of the total solid fraction on the permeation properties of the MM-CMS and CMS membranes.
机译:论文第一部分的目的是制备用于制备混合基质(MM)膜的碳分子筛(CMS)颗粒。因此,使用电喷雾聚醚酰亚胺(UltemRTM-1000 PEI)在二氯乙烷中的溶液进行了实验研究,以产生相当单分散的细PEI颗粒。研究了三个关键实验参数的影响,即施加电压,液体流速和聚合物浓度。发现液体流速对确定粒径具有最重要的影响。通常存在最佳的流速范围。与在其他液体流速下产生的颗粒相比,在最佳流速范围内获得的颗粒具有较窄的尺寸分布以及致密的球形形态。将通过电喷雾PEI颗粒的热解而异位制备的CMS颗粒的性质与通过热解PEI颗粒的常规研磨产生的CMS颗粒进行比较。通常发现它们具有相似的结构性质。在论文的第二部分,研究了利用MM-CMS膜从与发电相关的气体混合物中分离H2和CO2的技术可行性。 MM膜是通过将CMS纳米颗粒掺入聚合物基质中制成的。 CMS纳米粒子是通过对PEI的热解团粒进行湿磨而制备的。均准备了平板式MM聚合物基(MMP)膜和支持的MM-CMS膜。对于MMP膜,CO2和CH 4的渗透率均随CMS含量的增加而增加,而CO2 / CH4的选择性则保持不变或略有降低。这可能是由于聚合物和CMS纳米颗粒之间的粘合力差所致。在MM-CMS膜的情况下,CMS纳米颗粒的掺入极大地提高了渗透性和选择性。对于CMS颗粒载量为10 wt%的膜,获得的理想CO2 / CH4分离因子为120,渗透率为9.0 x 10-8 mol / m2.s.Pa。相应的H2分离系数为130,H2渗透率为9.7 x 10-8 mol / m2.s.Pa.。还研究了总固体分数对MM-CMS和CMS膜渗透性能的影响。

著录项

  • 作者

    Bagheri-Tar, Faezeh.;

  • 作者单位

    University of Southern California.$bChemical Engineering: Doctor of Philosophy.;

  • 授予单位 University of Southern California.$bChemical Engineering: Doctor of Philosophy.;
  • 学科 Engineering Chemical.; Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 195 p.
  • 总页数 195
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化工过程(物理过程及物理化学过程);工程材料学;
  • 关键词

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